Reduced Order Aerodynamic Modeling of How to Make CFD Useful to an Aeroelastician

E. Dowell, K. Hall, Michael C. Romanowski
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引用次数: 1

Abstract

In this article, we review the status of reduced order modeling of unsteady aerodynamic systems. Reduced order modeling is a conceptually novel and computationally efficient technique for computing unsteady flow about isolated airfoils, wings, and turbomachinery cascades. Starting with either a time domain or frequency domain computational fluid dynamics (CFD) analysis of unsteady aerodynamic or aeroacoustic flows, a large, sparse eigenvalue problem is solved using the Lanczos algorithm. Then, using just a few of the resulting eigenmodes, a Reduced Order Model of the unsteady flow is constructed. With this model, one can rapidly and accurately predict the unsteady aerodynamic response of the system over a wide range of reduced frequencies. Moreover, the eigenmode information provides important insights into the physics of unsteady flows. Finally, the method is particularly well suited for use in the active control of aeroelastic and aeroacoustic phenomena as well as in standard aeroelastic analysis for flutter or gust response. Numerical results presented include: 1) comparison of the reduced order model to classical unsteady incompressible aerodynamic theory, 2) reduced order calculations of compressible unsteady aerodynamics based on the full potential equation, 3) reduced order calculations of unsteady flow about an isolated airfoil based on the Euler equations, and 4) reduced order calculations of unsteady viscous flows associated with cascade stall flutter, 5) flutter analysis using the Reduced Order Model. The presentation will include our most recent results including the use of A-one Orthogonal Decomposition as an alternative or complement to eigenmodes.
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如何使CFD对气动弹性学家有用的降阶气动建模
本文综述了非定常气动系统降阶建模的研究现状。降阶建模是一种概念新颖且计算效率高的技术,可用于计算孤立翼型、机翼和涡轮机械叶栅的非定常流场。从非定常气动或气动声学流动的时域或频域计算流体动力学(CFD)分析出发,利用Lanczos算法求解了一个大的稀疏特征值问题。然后,利用得到的几个特征模态,建立了非定常流场的降阶模型。利用该模型,可以快速准确地预测系统在大范围的降频范围内的非定常气动响应。此外,特征模态信息为非定常流的物理特性提供了重要的见解。最后,该方法特别适合用于气动弹性和气动声学现象的主动控制,以及用于颤振或阵风响应的标准气动弹性分析。数值结果包括:1)降阶模型与经典非定常不可压缩气动理论的比较;2)基于全势方程的可压缩非定常空气动力学降阶计算;3)基于欧拉方程的非定常翼型非定常流动降阶计算;4)与叶栅失速颤振相关的非定常粘性流动降阶计算;5)基于降阶模型的颤振分析。本报告将包括我们最近的结果,包括使用a - 1正交分解作为特征模态的替代或补充。
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